The impact of African aridity on the isotopic signature of Atlantic deep waters across the Middle Pleistocene Transition

A high resolution analysis of benthic foraminifera as well as of aeolian terrigenous proxies extracted from a 37 m-long marine core located off the Mauritanian margin spanning the last ~ 1.2 Ma, documents the possible link between major continental environmental changes with a shift in the isotopic...

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Veröffentlicht in:Quaternary research 2012-01, Vol.77 (1), p.182-191
Hauptverfasser: Malaizé, Bruno, Jullien, Elsa, Tisserand, Amandine, Skonieczny, Charlotte, Grousset, E. Francis, Eynaud, Fr"d"rique, Kissel, Catherine, Bonnin, J"r"me, Karstens, Svenja, Martinez, Philippe, Bory, Aloys, Bout-Roumazeilles, Vivianne, Caley, Thibaut, Crosta, Xavier, Charlier, Karine, Rossignol, Linda, Flores, Jos"-Abel, Schneider, Ralph
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Sprache:eng
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Zusammenfassung:A high resolution analysis of benthic foraminifera as well as of aeolian terrigenous proxies extracted from a 37 m-long marine core located off the Mauritanian margin spanning the last ~ 1.2 Ma, documents the possible link between major continental environmental changes with a shift in the isotopic signature of deep waters around 1.0–0.9 Ma, within the so-called Mid-Pleistocene Transition (MPT) time period. The increase in the oxygen isotopic composition of deep waters, as seen through the benthic foraminifera δ 18O values, is consistent with the growth of larger ice sheets known to have occurred during this transition. Deep-water mass δ 13C changes, also estimated from benthic foraminifera, show a strong depletion for the same time interval. This drastic change in δ 13C values is concomitant with a worldwide 0.3‰ decrease observed in the major deep oceanic waters for the MPT time period. The phase relationship between aeolian terrigeneous signal increase and this δ 13C decrease in our record, as well as in other paleorecords, supports the hypothesis of a global aridification amongst others processes to explain the deep-water masses isotopic signature changes during the MPT. In any case, the isotopic shifts imply major changes in the end-member δ 18O and δ 13C values of deep waters.
ISSN:0033-5894
1096-0287
DOI:10.1016/j.yqres.2011.09.010